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Is there a more pythonic way of converting excel-style columns to numbers (starting with 1)?

Working code up to two letters:

def column_to_number(c):
    """Return number corresponding to excel-style column."""
    number=-25
    for l in c:
        if not l in string.ascii_letters:
            return False
        number+=ord(l.upper())-64+25
    return number

Code runs:

>>> column_to_number('2')
False
>>> column_to_number('A')
1
>>> column_to_number('AB')
28

Three letters not working.

>>> column_to_number('ABA')
54
>>> column_to_number('AAB')
54

Reference: question answered in C#

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6 Answers 6

up vote 4 down vote accepted

There is a way to make it more pythonic (works with three or more letters and uses less magic numbers):

def col2num(col):
    num = 0
    for c in col:
        if c in string.ascii_letters:
            num = num * 26 + (ord(c.upper()) - ord('A')) + 1
    return num

And as a one-liner using reduce (does not check input and is less readable so I don't recommend it):

col2num = lambda col: reduce(lambda x, y: x*26 + y, [ord(c.upper()) - ord('A') + 1 for c in col])
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1  
if ord(c) in string.ascii_letters does not require the ord() call. You're just checking the letter itself. Errors like this otherwise. –  Xealot Mar 22 '14 at 3:14
    
@Xealot, it's fixed. Thanks. –  Sylvain Apr 29 '14 at 16:07
    
And how do you go back the other way? –  Aaron Hall Jul 23 '14 at 20:51

Here is one way to do it. It is a variation on code in the XlsxWriter module:

def col_to_num(col_str):
    """ Convert base26 column string to number. """
    expn = 0
    col_num = 0
    for char in reversed(col_str):
        col_num += (ord(char) - ord('A') + 1) * (26 ** expn)
        expn += 1

    return col_num


>>> col_to_num('A')
1
>>> col_to_num('AB')
28
>>> col_to_num('ABA')
729
>>> col_to_num('AAB')
704
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This should do, in VBA, what you're looking for:

Function columnNumber(colLetter As String) As Integer

    Dim colNumber As Integer
    Dim i As Integer

    colLetter = UCase(colLetter)
    colNumber = 0
    For i = 1 To Len(colLetter)
        colNumber = colNumber + (Asc(Mid(colLetter, Len(colLetter) - i + 1, 1)) - 64) * 26 ^ (i - 1)
    Next

    columnNumber = colNumber

End Function

You can use it as you would an Excel formula--enter column, in letters, as a string (eg, "AA") and should work regardless of column length.

Your code breaks when dealing with three letters because of the way you're doing the counting--you need to use base 26.

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After reading this, I decided to find a way to do it directly in Excel cells. It even accounts for columns after Z.

Just paste this formula into a cell of any row of any column and it will give you the corresponding number.

=IF(LEN(SUBSTITUTE(ADDRESS(ROW(),COLUMN(),4),ROW(),""))=2,
 CODE(LEFT(SUBSTITUTE(ADDRESS(ROW(),COLUMN(),4),ROW(),""),1))-64*26)+
 CODE(RIGHT(SUBSTITUTE(ADDRESS(ROW(),COLUMN(),4),ROW(),""),1)-64),
 CODE(SUBSTITUTE(ADDRESS(ROW(),COLUMN(),4),ROW(),""))-64)

The theme here was to grab the letter of the column, get the Code() of it and subtract 64, based on the fact that the ASCII character code for letter A is 64.

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I'm not sure I understand properly, do you want to "translate" the referenced C# code to python? If so, you were on the right track; just modify it so:

def column_to_number(c):
  """Return number corresponding to excel-style column."""
  sum = 0
  for l in c:
    if not l in string.ascii_letters:
      return False
    sum*=26
    sum+=ord(l.upper())-64
  return sum
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just do :

print ws.Range("E2").Column

call example :

from win32com import client
xl = client.Dispatch("Excel.Application")
wb = xl.Workbooks.Open("c:/somePath/file.xls")
xl.Visible = 1
ws = wb.Sheets("sheet 1")
print ws.Range("E2").Column

result :

>>5
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